Luo Ting, Chen Xinchun, Li Peisheng, Wang Ping, Li Cuncheng, Cao Bingqiang, Luo Jianbin, Yang Shikuan
Materials Research Center for Energy and Photoelectrochemical Conversion, School of Material Science and Engineering, University of Jinan, Jinan 250022, Shandong, People's Republic of China.
Nanotechnology. 2018 Jun 29;29(26):265704. doi: 10.1088/1361-6528/aabcf5. Epub 2018 Apr 10.
Engineering lubricant additives that have extraordinary friction reduction and anti-wear performance is critical to almost any modern mechanical machines. Here, we demonstrate the fabrication of laminated lubricant additives that can combine the advantages of zero-dimensional nanospheres and two-dimensional nanosheets. A simple in situ laser irradiation method is developed to prepare the laminated composite structure composed of ideally ultrasmooth MoS sub-microspheres embedded within multiple layers of graphene. These ultrasmooth MoS spheres within the laminated structure can change sliding friction into rolling friction under strong shear force created by moving contact surfaces to significantly reduce the friction. Meantime, the graphene layers can behave as 'protection pads' to efficiently avoid the formation of scars on the metal-to-metal contact surfaces. Overall, the laminated composites as lubricant additives synergistically improve the friction reduction and anti-wear properties. Additionally, due to the unique loosely packed laminated structure, the composites can stably disperse in the lubricant for more than 15 d and work under high temperatures without being oxidized. Such constructed laminated composites with outstanding tribological properties by an in situ laser irradiation method supply a new concept in designing lubricant additives that can combine the advantages of 0D and 2D structures.
设计具有卓越减摩和抗磨性能的工程润滑油添加剂对几乎所有现代机械设备都至关重要。在此,我们展示了层状润滑油添加剂的制备方法,该添加剂能够结合零维纳米球和二维纳米片的优点。我们开发了一种简单的原位激光辐照方法来制备由嵌入多层石墨烯中的理想超光滑二硫化钼亚微球组成的层状复合结构。在移动接触表面产生的强剪切力作用下,层状结构内的这些超光滑二硫化钼球体能将滑动摩擦转变为滚动摩擦,从而显著降低摩擦力。同时,石墨烯层可充当“保护垫”,有效避免金属与金属接触表面形成划痕。总体而言,作为润滑油添加剂的层状复合材料能协同提高减摩和抗磨性能。此外,由于独特的松散堆积层状结构,该复合材料能在润滑油中稳定分散超过15天,并在高温下工作而不被氧化。通过原位激光辐照方法构建的具有优异摩擦学性能的层状复合材料为设计能结合零维和二维结构优点的润滑油添加剂提供了一个新概念。